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Current progress in network research: toward reference networks for key model organisms

机译:网络研究的当前进展:建立关键模型生物的参考网络

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摘要

The collection of multiple genome-scale datasets is now routine, and the frontier of research in systems biology has shifted accordingly. Rather than clustering a single dataset to produce a static map of functional modules, the focus today is on data integration, network alignment, interactive visualization and ontological markup. Because of the intrinsic noisiness of high-throughput measurements, statistical methods have been central to this effort. In this review, we briefly survey available datasets in functional genomics, review methods for data integration and network alignment, and describe recent work on using network models to guide experimental validation. We explain how the integration and validation steps spring from a Bayesian description of network uncertainty, and conclude by describing an important near-term milestone for systems biology: the construction of a set of rich reference networks for key model organisms.
机译:现在,多个基因组规模的数据集的收集是常规的,并且系统生物学的研究领域也相应地发生了变化。如今,与其将单个数据集聚类以生成功能模块的静态图,不如将其重点放在数据集成,网络对齐,交互式可视化和本体标记上。由于高通量测量的固有噪声,因此统计方法一直是这项工作的核心。在这篇综述中,我们简要调查了功能基因组学中的可用数据集,回顾了数据集成和网络对齐的方法,并描述了使用网络模型指导实验验证的最新工作。我们将说明整合和验证步骤是如何从网络不确定性的贝叶斯描述中产生的,并以描述系统生物学的近期重要里程碑作为结论:为关键模型生物构建一组丰富的参考网络。

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